Electrolysis_of_water (2024)

Electrolysis of water is the decomposition of water (H2O) into oxygen (O2) and hydrogen gas (H2) due to an electric current being passed through the water. This electrolytic process is used in some industrial applications when hydrogen is needed.

An electrical power source is connected to two electrodes, or two plates, (typically made from some inert metal such as platinum or stainless steel) which are placed in the water.Hydrogen will appear at the cathode (the negatively charged electrode, where electrons are pumped into the water), and oxygen will appear at the anode (the positively charged electrode). The generated amount of hydrogen is twice the amount of oxygen, and both are proportional to the total electrical charge that was sent through the water.

Electrolysis of pure water is very slow; it is sped up dramatically by adding an electrolyte (such as a salt, an acid or a base).

Additional recommended knowledge

Daily Visual Balance Check

Essential Laboratory Skills Guide

Contents

  • 1 Equations
  • 2 Spontaneity of the process
  • 3 Electrolyte selection
  • 4 Techniques
    • 4.1 Fundamental Demonstration
    • 4.2 Hofmann voltameter
    • 4.3 Industrial electrolysis
    • 4.4 High-temperature electrolysis
  • 5 Applications
  • 6 Efficiency
  • 7 See also
  • 8 References

Equations

In the water at the negatively charged cathode, a reduction reaction takes place, with electrons (e) from the cathode being given to hydrogen cations to form hydrogen gas:

Cathode (reduction): 2H2O(l) + 2eH2(g) + 2OH(aq);

At the positively charged anode, an oxidation reaction occurs, generating oxygen gas and giving electrons to the anode to complete the circuit:

Anode (oxidation): 2H2O(l) → O2(g) + 4H+(aq) + 4e;

Combining these two reactions yields the overall decomposition of water into oxygen and hydrogen:

Overall reaction: 2H2O(l) → 2H2(g) + O2(g)

The number of hydrogen molecules produced is thus twice the number of oxygen molecules. Assuming equal temperature and pressure for both gases, the produced hydrogen gas has therefore twice the volume of the produced oxygen gas. The number of electrons pushed through the water is twice the number of generated hydrogen molecules and four times the number of generated oxygen molecules.

Spontaneity of the process

Decomposition of pure water into hydrogen and oxygen at standard temperature and pressure is not favorable in thermodynamical terms, as half of the reaction's standard potential are negative values.

Electrolysis_of_water (4)

On the other hand, Gibbs free energy for the process at standard conditions is a higher positive value, about 474.4 kJ.

Those considerations makes the process "impossible" to occur without adding electrolytes in the solution with necessary energy supplied by an external electrical power source.

Electrolyte selection

If the above described processes occur in pure water, H+ cations will accumulate at the anode and OH anions will accumulate at the cathode. This can be verified by adding a pH indicator to the water: the water near the anode is acidic while the water near the cathode is basic. These charged ions will repel the further flow of electricity until they have diffused away, a slow process. This is why pure water conducts electricity poorly and why electrolysis of pure water proceeds slowly.

If a water-soluble electrolyte is added, the conductivity of the water rises considerably. The electrolyte disassociates into cations and anions; the anions rush towards the anode and neutralize the buildup of positively charged H+ there; similarly, the cations rush towards the cathode and neutralize the buildup of negatively charged OH there. This allows the continued flow of electricity.[1]

Care must be taken in choosing an electrolyte, since an anion from the electrolyte is in competition with the hydroxide ions to give up an electron. An electrolyte anion with less standard electrode potential than hydroxide will be oxidized instead of the hydroxide, and no oxygen gas will be produced. A cation with a greater standard electrode potential than a hydrogen ion will be reduced in its stead, and no hydrogen gas will be produced.

The following cations have lower electrode potential than H+ and are therefore suitable for use as electrolyte cations: Li+, Rb+, K+, Cs+, Ba2+, Sr2+, Ca2+, Na+, and Mg2+. Sodium and lithium are frequently used, as they form inexpensive, soluble salts.

If an acid is used as the electrolyte, the cation is H+, and there is no competitor for the H+ created by disassociating water.

The most commonly used anion is sulfate (SO42-), as it is very difficult to oxidize, with the standard potential for oxidation of this ion to the peroxydisulfate ion being −0.22 volts.

Strong acids such as Sulphuric acid (H2SO4), and strong bases such as potassium hydroxide (KOH), and sodium hydroxide (NaOH) are frequently used as electrolytes.

Techniques

Fundamental Demonstration

Two leads, running from the terminals of a battery, are placed in a cup of water with a quantity of electrolyte added to establish conductivity. Hydrogen and Oxygen gases will stream from the oppositely charged electrode. Oxygen will collect at the anode and hydrogen will collect at the cathode.

Hofmann voltameter

Main article: Hofmann voltameter

The Hofmann voltameter is often used as a small-scale electrolytic cell. It consists of three joined upright cylinders. The inner cylinder is open at the top to allow the addition of water and the electrolyte. A platinum electrode is placed at the bottom of each of the two side cylinders, connected to the positive and negative terminals of a source of electricity. When current is run through the hofmann voltameter, gaseous oxygen forms at the anode and gaseous hydrogen at the cathode. Each gas displaces water and collects at the top of the two outer tubes, where it can be drawn off with a stopco*ck.

Industrial electrolysis

Many industrial electrolysis cells are very similar to Hofmann voltameters, with complex platinum plates or honeycombs as electrodes. Hydrogen gas is usually created and collected on site for use in other chemical processes, although in case of refineries it then makes more sense to produce it from natural gas. It can also be produced as a by-product, for example in brine electrolysis.

High-temperature electrolysis

Main article: High-temperature electrolysis

High-temperature electrolysis (also HTE or steam electrolysis) is a method currently being investigated for water electrolysis with a heat engine. High temperature electrolysis is more efficient than traditional room-temperature electrolysis because some of the energy is supplied as heat, which is cheaper than electricity, and because the electrolysis reaction is more efficient at higher temperatures.

Applications

About four percent of hydrogen gas produced worldwide is created by electrolysis, and normally used on site. Hydrogen is used for the creation of ammonia for fertilizer via the Haber process, and for converting heavy petroleum sources to lighter fractions via hydrocracking.

There is some speculation about future development of hydrogen as an energy carrier in a hydrogen economy, although the rapid evolution of electric battery technology makes overall efficiency a major consideration. Hydrogen fuel injection is a concept having a long history; its popularity has reemerged in recent years.

Efficiency

Water electrolysis does not convert 100% of the electrical energy into the chemical energy of hydrogen. The process loses energy because ions in the water need to move to carry electricity, and this movement ultimately heats up the water.

The energy efficiency of water electrolysis varies widely. Some report 50–70%[1], while others report 80–94%.[2]These values refer only to the efficiency of converting electrical energy into hydrogen's chemical energy. The energy lost in generating the electricity is not included. For instance, when considering a power plant that converts the heat of nuclear reactions into hydrogen via electrolysis, the total efficiency may be closer to 25–45%.[3]

See also

  • Electrochemistry
  • Electrolysis
  • Hydrogen production
  • Noryl
  • Gas cracker

References

  1. ^ Linus Pauling, General Chemistry, Section 15-2. San Francisco, 1970
  • Electrolysis of Water. Experiments on Electrochemistry. Retrieved on November 20, 2005.
  • Electrolysis of Water. Do Chem 044. Retrieved on November 20, 2005.

Categories: Electrolysis | Hydrogen production

Electrolysis_of_water (2024)

FAQs

Electrolysis_of_water? ›

Electrolysis is the process of using electricity to split water into hydrogen and oxygen. This reaction takes place in a unit called an electrolyzer.

What happens in electrolysis of water? ›

Electrolysis of water is the splitting of the water molecule into hydrogen and oxygen through. Electrolysis uses DC electricity for water electrolysis, obtaining hydrogen and storing it. Fuel cells do the inverse electrolysis of water: using hydrogen stored and oxygen (from the air) DC electricity is obtained (Fig.

What is the process of water electrolysis? ›

The basic principle of electrolysis is to split water into oxygen and hydrogen with the help of electricity. The splitting occurs in two partial reactions that take place at the two electrodes – cathode (-) and anode (+) – in the electrolysis cell.

What are the disadvantages of electrolysis of water? ›

Disadvantages of electrolysis of water. it takes a lot of energy to separate the water into hydrogen and oxygen. if you burn fossil fuels to create the energy for electrolysis water the process produce lots of emission. of CO2.

Is electrolysis of water easy? ›

However, the electrolysis of water is not easy for many reasons. Water is very weakly dissociated into hydrogen and hydroxide ions.

Is electrolyzed water safe to drink? ›

Furthermore, electrolyzed water is safe enough to drink. A study in Japan showed positive results for people with gastric pain who took daily doses of electrolyzed water. Electrolyzed water cleaner is very effective and safe.

Is electrolysis of water safe? ›

Chemical hazards: The electrolysis process can produce harmful chemicals, such as chlorine gas, if the water used is contaminated with impurities. Exposure to these chemicals can cause respiratory problems, skin irritation, and other health issues.

How much electricity is required for electrolysis of water? ›

The electrolysis of water in standard conditions requires a theoretical minimum of 237 kJ of electrical energy input to dissociate each mole of water, which is the standard Gibbs free energy of formation of water.

How efficient is electrolysis of water? ›

According to the reports, an alkaline electrolysis process has produced up to 0.38 million kg H2 per year with a system energy consumption of 53.4 kWh/kg H2 and a 73% efficiency [44].

Does electrolysis purify water? ›

Electrolysis to Purify Waste Water

Based on the same scientific concept as water purification tablets, this technology splits hydrogen and oxygen gas killing pathogens at the same time. As byproducts, it creates pure water, hydrogen, oxygen, and solid waste, which can easily be dealt with in a safe manner.

Why is electrolysis of water so expensive? ›

The materials used for electrolysis are not expensive - salt water is not exactly a high tech expensive product, and the production plant is costly, but on a similar scale to other industrial reactor plant. What really adds to the cost of production is the cost of the electricity used to carry out the electrolysis.

What is the best material for water electrolysis? ›

Steel and iron are the most commonly used for electrolysis of water. These electrodes are used as anode and it is sacrificed in electrolysis, as the anode rusts (get oxidized) and the cathode de-rusts (get reduced).

What is the problem with electrolysis? ›

Skin Reaction- Redness, Swelling, Scabs, Infection, Scarring - Hair removal by electrolysis does cause minor redness, swelling, dryness, blisters or even scab formation in the skin immediately after treatment, depending on the skin sensitivity, quality of equipment used, strength of current used (high currents have a ...

Can you do electrolysis of water at home? ›

Simple Experiment to Electrolyse Water

Push two metal pins through the bottom of a plastic cup. Fill the cup with salt water and put the pins on a 9-volt battery. One pin will produce hydrogen gas and the other will produce oxygen. Put two test tubes over the pins to see the gases separate.

How to make electrolyzed water at home? ›

Use a spoon or whisk to mix the salt and sugar powder into the water. After about 1 minute of vigorous stirring, the solution should be completely dissolved. Now, homemade electrolyzed water is ready to drink. Electrolyte solutions can be refrigerated for 24 hours.

Does Epsom salt conduct electricity in water? ›

Epsom salt is an electrolyte and serves to conduct electricity through the solution.

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